English

Dark Matter Annihilation and Pair-Instability Supernovae

High Energy Astrophysical Phenomena 2024-07-30 v2 Cosmology and Nongalactic Astrophysics Instrumentation and Methods for Astrophysics General Relativity and Quantum Cosmology High Energy Physics - Phenomenology

Abstract

We study the evolution of heavy stars (M40MM\ge40{\rm M}_\odot) undergoing pair-instability in the presence of annihilating dark matter. Focusing on the scenario where the dark matter is in capture-annihilation equilibrium, we model the profile of energy injections in the local thermal equilibrium approximation. We find that significant changes to masses of astrophysical black holes formed by (pulsational) pair-instability supernovae can occur when the ambient dark matter density ρDM109GeVcm3 \rho_{\rm DM} \gtrsim10^9 \rm \, GeV \, cm^{-3}. There are two distinct outcomes, depending on the dark matter mass. For masses mDM1m_{\rm DM}\gtrsim1 GeV the DM is primarily confined to the core. The annihilation increases the lifetime of core helium burning, resulting in more oxygen being formed, fueling a more violent explosion during the pair-instability-induced contraction. This drives stronger pulsations, leading to lighter black holes being formed than predicted by the standard model. For masses mDM0.5m_{\rm DM}\lesssim0.5 GeV there is significant dark matter in the envelope, leading to a phase where the star is supported by the energy from the annihilation. This reduces the core temperature and density, allowing the star to evade the pair-instability allowing heavier black holes to be formed. We find a mass gap for all models studied.

Keywords

Cite

@article{arxiv.2310.20044,
  title  = {Dark Matter Annihilation and Pair-Instability Supernovae},
  author = {Djuna Croon and Jeremy Sakstein},
  journal= {arXiv preprint arXiv:2310.20044},
  year   = {2024}
}

Comments

Typos corrected. The red and orange curves in Fig. 1 were swapped in the previous version

R2 v1 2026-06-28T13:06:44.742Z